1 /* $NetBSD: rf_reconmap.c,v 1.32 2011/05/10 07:04:17 mrg Exp $ */ 2 /* 3 * Copyright (c) 1995 Carnegie-Mellon University. 4 * All rights reserved. 5 * 6 * Author: Mark Holland 7 * 8 * Permission to use, copy, modify and distribute this software and 9 * its documentation is hereby granted, provided that both the copyright 10 * notice and this permission notice appear in all copies of the 11 * software, derivative works or modified versions, and any portions 12 * thereof, and that both notices appear in supporting documentation. 13 * 14 * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS" 15 * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND 16 * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE. 17 * 18 * Carnegie Mellon requests users of this software to return to 19 * 20 * Software Distribution Coordinator or Software.Distribution@CS.CMU.EDU 21 * School of Computer Science 22 * Carnegie Mellon University 23 * Pittsburgh PA 15213-3890 24 * 25 * any improvements or extensions that they make and grant Carnegie the 26 * rights to redistribute these changes. 27 */ 28 29 /************************************************************************* 30 * rf_reconmap.c 31 * 32 * code to maintain a map of what sectors have/have not been reconstructed 33 * 34 *************************************************************************/ 35 36 #include <sys/cdefs.h> 37 __KERNEL_RCSID(0, "$NetBSD: rf_reconmap.c,v 1.32 2011/05/10 07:04:17 mrg Exp $"); 38 39 #include "rf_raid.h" 40 #include <sys/time.h> 41 #include "rf_general.h" 42 #include "rf_utils.h" 43 44 /* special pointer values indicating that a reconstruction unit 45 * has been either totally reconstructed or not at all. Both 46 * are illegal pointer values, so you have to be careful not to 47 * dereference through them. RU_NOTHING must be zero, since 48 * MakeReconMap uses memset to initialize the structure. These are used 49 * only at the head of the list. 50 */ 51 #define RU_ALL ((RF_ReconMapListElem_t *) -1) 52 #define RU_NOTHING ((RF_ReconMapListElem_t *) 0) 53 54 /* For most reconstructs we need at most 3 RF_ReconMapListElem_t's. 55 * Bounding the number we need is quite difficult, as it depends on how 56 * badly the sectors to be reconstructed get divided up. In the current 57 * code, the reconstructed sectors appeared aligned on stripe boundaries, 58 * and are always presented in stripe width units, so we're probably 59 * allocating quite a bit more than we'll ever need. 60 */ 61 #define RF_NUM_RECON_POOL_ELEM 100 62 63 static void 64 compact_stat_entry(RF_Raid_t *, RF_ReconMap_t *, int, int); 65 static void crunch_list(RF_ReconMap_t *, RF_ReconMapListElem_t *); 66 static RF_ReconMapListElem_t * 67 MakeReconMapListElem(RF_ReconMap_t *, RF_SectorNum_t, RF_SectorNum_t, 68 RF_ReconMapListElem_t *); 69 static void 70 FreeReconMapListElem(RF_ReconMap_t *mapPtr, RF_ReconMapListElem_t * p); 71 72 /*--------------------------------------------------------------------------- 73 * 74 * Creates and initializes new Reconstruction map 75 * 76 * ru_sectors - size of reconstruction unit in sectors 77 * disk_sectors - size of disk in sectors 78 * spareUnitsPerDisk - zero unless distributed sparing 79 *-------------------------------------------------------------------------*/ 80 81 RF_ReconMap_t * 82 rf_MakeReconMap(RF_Raid_t *raidPtr, RF_SectorCount_t ru_sectors, 83 RF_SectorCount_t disk_sectors, 84 RF_ReconUnitCount_t spareUnitsPerDisk) 85 { 86 RF_RaidLayout_t *layoutPtr = &raidPtr->Layout; 87 RF_ReconUnitCount_t num_rus = layoutPtr->stripeUnitsPerDisk / layoutPtr->SUsPerRU; 88 RF_ReconMap_t *p; 89 90 RF_Malloc(p, sizeof(RF_ReconMap_t), (RF_ReconMap_t *)); 91 p->sectorsPerReconUnit = ru_sectors; 92 p->sectorsInDisk = disk_sectors; 93 94 p->totalRUs = num_rus; 95 p->spareRUs = spareUnitsPerDisk; 96 p->unitsLeft = num_rus - spareUnitsPerDisk; 97 p->low_ru = 0; 98 p->status_size = RF_RECONMAP_SIZE; 99 p->high_ru = p->status_size - 1; 100 p->head = 0; 101 102 RF_Malloc(p->status, p->status_size * sizeof(RF_ReconMapListElem_t *), (RF_ReconMapListElem_t **)); 103 RF_ASSERT(p->status != (RF_ReconMapListElem_t **) NULL); 104 105 (void) memset((char *) p->status, 0, 106 p->status_size * sizeof(RF_ReconMapListElem_t *)); 107 108 pool_init(&p->elem_pool, sizeof(RF_ReconMapListElem_t), 0, 109 0, 0, "raidreconpl", NULL, IPL_BIO); 110 pool_prime(&p->elem_pool, RF_NUM_RECON_POOL_ELEM); 111 112 rf_init_mutex2(p->mutex, IPL_VM); 113 rf_init_cond2(p->cv, "reconupdate"); 114 115 return (p); 116 } 117 118 119 /*--------------------------------------------------------------------------- 120 * 121 * marks a new set of sectors as reconstructed. All the possible 122 * mergings get complicated. To simplify matters, the approach I take 123 * is to just dump something into the list, and then clean it up 124 * (i.e. merge elements and eliminate redundant ones) in a second pass 125 * over the list (compact_stat_entry()). Not 100% efficient, since a 126 * structure can be allocated and then immediately freed, but it keeps 127 * this code from becoming (more of) a nightmare of special cases. 128 * The only thing that compact_stat_entry() assumes is that the list 129 * is sorted by startSector, and so this is the only condition I 130 * maintain here. (MCH) 131 * 132 * This code now uses a pool instead of the previous malloc/free 133 * stuff. 134 *-------------------------------------------------------------------------*/ 135 136 void 137 rf_ReconMapUpdate(RF_Raid_t *raidPtr, RF_ReconMap_t *mapPtr, 138 RF_SectorNum_t startSector, RF_SectorNum_t stopSector) 139 { 140 RF_SectorCount_t sectorsPerReconUnit = mapPtr->sectorsPerReconUnit; 141 RF_SectorNum_t i, first_in_RU, last_in_RU, ru; 142 RF_ReconMapListElem_t *p, *pt; 143 144 rf_lock_mutex2(mapPtr->mutex); 145 while(mapPtr->lock) { 146 rf_wait_cond2(mapPtr->cv, mapPtr->mutex); 147 } 148 mapPtr->lock = 1; 149 rf_unlock_mutex2(mapPtr->mutex); 150 RF_ASSERT(startSector >= 0 && stopSector < mapPtr->sectorsInDisk && 151 stopSector >= startSector); 152 153 while (startSector <= stopSector) { 154 i = startSector / mapPtr->sectorsPerReconUnit; 155 first_in_RU = i * sectorsPerReconUnit; 156 last_in_RU = first_in_RU + sectorsPerReconUnit - 1; 157 158 /* do we need to move the queue? */ 159 while (i > mapPtr->high_ru) { 160 #ifdef DIAGNOSTIC 161 if (mapPtr->status[mapPtr->head]!=RU_ALL) { 162 printf("\nraid%d: reconmap incorrect -- working on i %" PRIu64 "\n", 163 raidPtr->raidid, i); 164 printf("raid%d: ru %" PRIu64 " not completed!!!\n", 165 raidPtr->raidid, mapPtr->head); 166 167 printf("raid%d: low: %" PRIu64 " high: %" PRIu64 "\n", 168 raidPtr->raidid, mapPtr->low_ru, mapPtr->high_ru); 169 170 panic("reconmap incorrect"); 171 } 172 #endif 173 mapPtr->low_ru++; 174 mapPtr->high_ru++; 175 /* initialize "highest" RU status entry, which 176 will take over the current head postion */ 177 mapPtr->status[mapPtr->head]=RU_NOTHING; 178 179 /* move head too */ 180 mapPtr->head++; 181 if (mapPtr->head >= mapPtr->status_size) 182 mapPtr->head = 0; 183 184 } 185 186 ru = i - mapPtr->low_ru + mapPtr->head; 187 if (ru >= mapPtr->status_size) 188 ru = ru - mapPtr->status_size; 189 190 if ((ru < 0) || (ru >= mapPtr->status_size)) { 191 printf("raid%d: ru is bogus %" PRIu64 "%" PRIu64 "%" PRIu64 "%" PRIu64 "%" PRIu64 "\n", 192 raidPtr->raidid, i, ru, mapPtr->head, mapPtr->low_ru, mapPtr->high_ru); 193 panic("bogus ru in reconmap"); 194 } 195 196 p = mapPtr->status[ru]; 197 if (p != RU_ALL) { 198 if (p == RU_NOTHING || p->startSector > startSector) { 199 /* insert at front of list */ 200 201 mapPtr->status[ru] = MakeReconMapListElem(mapPtr,startSector, RF_MIN(stopSector, last_in_RU), (p == RU_NOTHING) ? NULL : p); 202 203 } else {/* general case */ 204 do { /* search for place to insert */ 205 pt = p; 206 p = p->next; 207 } while (p && (p->startSector < startSector)); 208 pt->next = MakeReconMapListElem(mapPtr,startSector, RF_MIN(stopSector, last_in_RU), p); 209 210 } 211 compact_stat_entry(raidPtr, mapPtr, i, ru); 212 } 213 startSector = RF_MIN(stopSector, last_in_RU) + 1; 214 } 215 rf_lock_mutex2(mapPtr->mutex); 216 mapPtr->lock = 0; 217 rf_broadcast_cond2(mapPtr->cv); 218 rf_unlock_mutex2(mapPtr->mutex); 219 } 220 221 222 223 /*--------------------------------------------------------------------------- 224 * 225 * performs whatever list compactions can be done, and frees any space 226 * that is no longer necessary. Assumes only that the list is sorted 227 * by startSector. crunch_list() compacts a single list as much as 228 * possible, and the second block of code deletes the entire list if 229 * possible. crunch_list() is also called from 230 * MakeReconMapAccessList(). 231 * 232 * When a recon unit is detected to be fully reconstructed, we set the 233 * corresponding bit in the parity stripe map so that the head follow 234 * code will not select this parity stripe again. This is redundant 235 * (but harmless) when compact_stat_entry is called from the 236 * reconstruction code, but necessary when called from the user-write 237 * code. 238 * 239 *-------------------------------------------------------------------------*/ 240 241 static void 242 compact_stat_entry(RF_Raid_t *raidPtr, RF_ReconMap_t *mapPtr, int i, int j) 243 { 244 RF_SectorCount_t sectorsPerReconUnit = mapPtr->sectorsPerReconUnit; 245 RF_ReconMapListElem_t *p = mapPtr->status[j]; 246 247 crunch_list(mapPtr, p); 248 249 if ((p->startSector == i * sectorsPerReconUnit) && 250 (p->stopSector == i * sectorsPerReconUnit + 251 sectorsPerReconUnit - 1)) { 252 mapPtr->status[j] = RU_ALL; 253 mapPtr->unitsLeft--; 254 FreeReconMapListElem(mapPtr, p); 255 } 256 } 257 258 259 static void 260 crunch_list(RF_ReconMap_t *mapPtr, RF_ReconMapListElem_t *listPtr) 261 { 262 RF_ReconMapListElem_t *pt, *p = listPtr; 263 264 if (!p) 265 return; 266 pt = p; 267 p = p->next; 268 while (p) { 269 if (pt->stopSector >= p->startSector - 1) { 270 pt->stopSector = RF_MAX(pt->stopSector, p->stopSector); 271 pt->next = p->next; 272 FreeReconMapListElem(mapPtr, p); 273 p = pt->next; 274 } else { 275 pt = p; 276 p = p->next; 277 } 278 } 279 } 280 /*--------------------------------------------------------------------------- 281 * 282 * Allocate and fill a new list element 283 * 284 *-------------------------------------------------------------------------*/ 285 286 static RF_ReconMapListElem_t * 287 MakeReconMapListElem(RF_ReconMap_t *mapPtr, RF_SectorNum_t startSector, 288 RF_SectorNum_t stopSector, RF_ReconMapListElem_t *next) 289 { 290 RF_ReconMapListElem_t *p; 291 292 p = pool_get(&mapPtr->elem_pool, PR_WAITOK); 293 p->startSector = startSector; 294 p->stopSector = stopSector; 295 p->next = next; 296 return (p); 297 } 298 /*--------------------------------------------------------------------------- 299 * 300 * Free a list element 301 * 302 *-------------------------------------------------------------------------*/ 303 304 static void 305 FreeReconMapListElem(RF_ReconMap_t *mapPtr, RF_ReconMapListElem_t *p) 306 { 307 pool_put(&mapPtr->elem_pool, p); 308 } 309 /*--------------------------------------------------------------------------- 310 * 311 * Free an entire status structure. Inefficient, but can be called at 312 * any time. 313 * 314 *-------------------------------------------------------------------------*/ 315 void 316 rf_FreeReconMap(RF_ReconMap_t *mapPtr) 317 { 318 RF_ReconMapListElem_t *p, *q; 319 RF_ReconUnitCount_t numRUs; 320 RF_ReconUnitNum_t i; 321 322 numRUs = mapPtr->sectorsInDisk / mapPtr->sectorsPerReconUnit; 323 if (mapPtr->sectorsInDisk % mapPtr->sectorsPerReconUnit) 324 numRUs++; 325 326 for (i = 0; i < mapPtr->status_size; i++) { 327 p = mapPtr->status[i]; 328 while (p != RU_NOTHING && p != RU_ALL) { 329 q = p; 330 p = p->next; 331 RF_Free(q, sizeof(*q)); 332 } 333 } 334 335 rf_destroy_mutex2(mapPtr->mutex); 336 rf_destroy_cond2(mapPtr->cv); 337 338 pool_destroy(&mapPtr->elem_pool); 339 RF_Free(mapPtr->status, mapPtr->status_size * 340 sizeof(RF_ReconMapListElem_t *)); 341 RF_Free(mapPtr, sizeof(RF_ReconMap_t)); 342 } 343 /*--------------------------------------------------------------------------- 344 * 345 * returns nonzero if the indicated RU has been reconstructed already 346 * 347 *-------------------------------------------------------------------------*/ 348 349 int 350 rf_CheckRUReconstructed(RF_ReconMap_t *mapPtr, RF_SectorNum_t startSector) 351 { 352 RF_ReconUnitNum_t i; 353 int rv; 354 355 i = startSector / mapPtr->sectorsPerReconUnit; 356 357 if (i < mapPtr->low_ru) 358 rv = 1; 359 else if (i > mapPtr->high_ru) 360 rv = 0; 361 else { 362 i = i - mapPtr->low_ru + mapPtr->head; 363 if (i >= mapPtr->status_size) 364 i = i - mapPtr->status_size; 365 if (mapPtr->status[i] == RU_ALL) 366 rv = 1; 367 else 368 rv = 0; 369 } 370 371 return rv; 372 } 373 374 RF_ReconUnitCount_t 375 rf_UnitsLeftToReconstruct(RF_ReconMap_t *mapPtr) 376 { 377 RF_ASSERT(mapPtr != NULL); 378 return (mapPtr->unitsLeft); 379 } 380 381 #if RF_DEBUG_RECON 382 void 383 rf_PrintReconSchedule(RF_ReconMap_t *mapPtr, struct timeval *starttime) 384 { 385 static int old_pctg = -1; 386 struct timeval tv, diff; 387 int new_pctg; 388 389 new_pctg = 100 - (rf_UnitsLeftToReconstruct(mapPtr) * 390 100 / mapPtr->totalRUs); 391 if (new_pctg != old_pctg) { 392 RF_GETTIME(tv); 393 RF_TIMEVAL_DIFF(starttime, &tv, &diff); 394 printf("%d %d.%06d\n", (int) new_pctg, (int) diff.tv_sec, 395 (int) diff.tv_usec); 396 old_pctg = new_pctg; 397 } 398 } 399 #endif 400 401